Tessier L H, Paulus F, Keller M, Vial C, Imbault P
Institut de Biologie, Moléculaire des Plantes du CNRS, Université Louis, Pasteur, Strasbourg, France.
J Mol Biol. 1995 Jan 6;245(1):22-33. doi: 10.1006/jmbi.1994.0003.
In the protist Euglena gracilis, the small subunit of the chloroplast enzyme ribulose 1,5-bisphosphate carboxylase/oxygenase is encoded by nuclear rbcS genes and synthesized as a polyprotein precursor containing eight mature small subunit molecules. This large precursor is encoded by at least eight different nuclear genes as ascertained by transcript analysis. The structure of three rbcS genes was established and the coding sequences were found to be interrupted by many intervening sequences (IVS). Apart from the first 5' intron involved in trans-splicing, none of these IVSs obeys the GT-AG rule characteristic of introns in higher eukaryote genes. Surprisingly, these IVSs are located at identical positions within the three genes studied. Moreover, extensive sequence homologies were found between IVSs located in the same gene as well as in different genes. The sequences of these homologous IVSs differ only by inserted and/or deleted sequences. The striking conservation of the 5' and 3' regions of these IVSs is correlated to their potential secondary structures. These structures, which bring the IVS extremities together with the exon boundaries, could be involved in a novel splicing process. The second 5' IVS is shown to be excised before the addition of the spliced leader sequence to the pre-mRNA. Similarly, two 3' IVSs are excised before the polyadenylation step. These results suggest that IVS splicing is faster than eukaryotic genomic cis-splicing and involves components other than those of the classical spliceosomes.
在原生生物纤细裸藻中,叶绿体酶核酮糖1,5 - 二磷酸羧化酶/加氧酶的小亚基由核rbcS基因编码,并作为一种包含八个成熟小亚基分子的多蛋白前体进行合成。通过转录分析确定,这种大的前体由至少八个不同的核基因编码。三个rbcS基因的结构已确定,发现编码序列被许多间隔序列(IVS)中断。除了参与反式剪接的第一个5'内含子外,这些IVS均不遵循高等真核生物基因内含子特有的GT - AG规则。令人惊讶的是,这些IVS在所研究的三个基因中的位置相同。此外,在同一基因以及不同基因中的IVS之间发现了广泛的序列同源性。这些同源IVS的序列仅因插入和/或缺失序列而不同。这些IVS的5'和3'区域的显著保守性与其潜在的二级结构相关。这些将IVS末端与外显子边界结合在一起的结构,可能参与一种新的剪接过程。第二个5' IVS在将剪接前导序列添加到前体mRNA之前被切除。同样,两个3' IVS在聚腺苷酸化步骤之前被切除。这些结果表明,IVS剪接比真核基因组顺式剪接更快,并且涉及除经典剪接体之外的其他成分。